Problem solution · C++

Maximum Palindromes After Operations

Maximum Palindromes After Operations: a C++ solution using sorting and greedy selection. Learn the idea, check the complexity, and read the full code, with credit to walkccc LeetCode Solutions.

Technique
Sorting and greedy selection
Source
walkccc LeetCode Solutions
Length
41 lines
Start with the idea.

Try the problem first. If you get stuck, read the approach below, then write your own solution. The full code is at the bottom.

Approach

Sorting and greedy selection

For Maximum Palindromes After Operations, the implementation first exposes a useful order, then scans that order while making locally justified choices.

  1. Choose the key that reveals the greedy or grouping structure.
  2. Sort the relevant records by that key.
  3. Scan in order, maintaining the invariant that makes each local choice safe.

Code notes

  • 41 lines of C++ from the credited upstream file 3035.cpp.
  • The implementation visibly relies on sequence storage, hash lookup.
  • 5 loop blocks detected.

Complexity

Sorting is typically the dominant term unless the subsequent scan uses a more expensive nested operation.

Check the problem constraints before deciding whether this complexity will pass.

Source

Code and credit

This code comes from walkccc LeetCode Solutions by P.-Y. Chen (walkccc) and is used under the MIT licence.

Full codeMaximum Palindromes After Operations · C++C++
Use this to learn the idea, then write your own version.
class Solution { public:  int maxPalindromesAfterOperations(vector<string>& words) {    int ans = 0;    int pairs = getPairs(words);     for (const int length : getSortedLengths(words)) {      const int needPairs = length / 2;      if (pairs < needPairs)        return ans;      ++ans;      pairs -= needPairs;    }     return ans;  }  private:  int getPairs(const vector<string>& words) {    int pairs = 0;    unordered_map<char, int> count;     for (const string& word : words)      for (const char c : word)        ++count[c];     for (const auto& [_, freq] : count)      pairs += freq / 2;     return pairs;  }   vector<int> getSortedLengths(const vector<string>& words) {    vector<int> lengths;    for (const string& word : words)      lengths.push_back(word.length());    ranges::sort(lengths);    return lengths;  }}; 

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